Work, heat and entropy production in bipartite quantum systems

In bipartite quantum systems commutation relations between the Hamiltonian of each subsystem and the interaction impose fundamental constraints on the dynamics of each partition. Here we investigate work, heat and entropy production in bipartite systems characterized by particular commutators betwee...

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Published inNew journal of physics Vol. 17; no. 7; pp. 75014 - 75024
Main Authors Hossein-Nejad, Hoda, O'Reilly, Edward J, Olaya-Castro, Alexandra
Format Journal Article
LanguageEnglish
Published Bristol IOP Publishing 01.07.2015
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ISSN1367-2630
1367-2630
DOI10.1088/1367-2630/17/7/075014

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Summary:In bipartite quantum systems commutation relations between the Hamiltonian of each subsystem and the interaction impose fundamental constraints on the dynamics of each partition. Here we investigate work, heat and entropy production in bipartite systems characterized by particular commutators between their local Hamiltonians and the interaction operator. We consider the formalism of (Weimer et al 2008 Europhys. Lett. 83 30008), in which heat (work) is identified with energy changes that (do not) alter the local von Neumann entropy, as observed in an effective local measurement basis. We demonstrate the consequences of the commutation relations on the work and heat fluxes into each partition, and extend the formalism to open quantum systems where one, or both, partitions are subject to a Markovian thermal bath. We also discuss the relation between heat and entropy in bipartite quantum systems out of thermal equilibrium, and reconcile the aforementioned approach with the second law of thermodynamics.
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ISSN:1367-2630
1367-2630
DOI:10.1088/1367-2630/17/7/075014